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Biomedical subjects

R Holliday

Publications and source records attributed to R Holliday.

At least 145 records · Page 8Linked to original sources

Recombination and meiosis.

Although exchanges between sister chromatids are common in mitotic cells, those involving homologous chromosomes are rare. Since recombination between homologues is one of the functions of meiosis, it follows that one aspect of the differentiation of the meiocyte involves the synthesis of proteins or enzymes which facilitate synapsis and exchange. Mutants are known which seem to have constitutive levels of mitotic recombination between homologues, and these may be defective in the mechanism which normally represses mitotic recombination. It has been proposed that one component of the synaptonemal complex (s.c.) is a filamentous pairing protein with DNA binding sites which are base sequence specific. Synapsis occurs because the distribution of these sequences is the same in homologues. When only non-homologous chromosomes are present, as in haploid meiosis, only weak pairing can occur, since the base sequences are largely out of register. Although certain features of recombination at the molecular level are known, none of the models so far proposed suggest an explanation for interference between crossovers. It is suggested that interference may depend on the presence of a limited amount of another DNA binding protein which is specifically located within the s.c. A crossover between naked DNA molecules is initially a weak structure, which must be later converted into a visible and mechanically strong chiasma. It is assumed that this stabilization of a crossover is achieved by the DNA binding protein, which can diffuse freely within the s.c. and bind cooperatively to any recombinant DNA molecules within it. Depletion of the binding protein within the vicinity of a crossover makes it unlikely that the second crossover can be formed nearby.

Animals↗

Evidence for the formation of hybrid DNA during mitotic recombination in Chinese hamster cells.

Direct evidence is provided for the formation of hybrid DNA during mitotic recombination in CHO cells. The cells were labeled for one round of replication in medium containing BUdR, so that the density of the DNA was heavy light (HL) and then returned to light medium. Further DNA synthesis, during either repair or chromosome replication, can only result in HL or fully light (LL) DNA; however, the formation of hybrid DNA as part of the process of recombinational repair will produce some fully heavy (HH) DNA. A small fraction of DNA containing regions of HH DNA has been detected on neutral CsC1 gradients, and the amount of this DNA is increased by treatment of the cells with mitomycin C. Increasing doses of mitomycin C produce smimlar increases in both the amount of HH DNA and the frequency of sister chromatid exchanges measured cytologically. This correlation provides evidence that the HH DNA is hybrid DNA, formed as an intermediate in recombinational repair.

Bromodeoxyuridine↗

Decreased fidelity of DNA polymerase activity isolated from aging human fibroblasts.

DNA polymerase (deoxynucleosidetriphosphate: DNA nucleotidyltransferase, EC 2.7.7.7 or DNA nucleotidyltransferase) activity, isolated from late and early passage cells of the diploid human fibroblast line, MRC-5, was compared. The level of activity dropped with increasing passage. In addition, when the fidelity of polymerization was monitored with four synthetic templates under a variety of conditions, it was observed that the enzyme from late passage cells was more error-prone. The possible relation of these observations to "senescence" of the fibroblasts is discussed.

DNA Nucleotidyltransferases↗

A rapid rise in cell variants during the senescence of populations of human fibroblasts.

An attempt has been made to measure the frequency of mutations throughout the lifespan of human fibroblast strain MRC-5. A novel procedure has been used which involves staining individual cells for high levels of glucose-6-phosphate dehydrogenase. Evidence is presented that this phenotype is due to mutation. The frequency of variants was scored from passage 16 until the final phase of senescence (passage 60). There is an exponential increase of stained cells throughout this period. The results are in agreement with the general error theory, which proposes that aging is due to a breakdown in the fidelity of information transfer between macromolecules.

Cell Line↗

Testing the protein error theory of ageing: a reply to Baird, Samis, Massie and Zimmerman.

A major prediction of Orgel's theory is that the misincorporation of amino acids into proteins will increase with age. This has not yet been tested experimentally. Indirect methods have been used to search for the presence of altered proteins in ageing cells or organisms, but these would not necessarily detect a low level of mistakes, nor do they distinquish between errors in synthesis and post-synthetic changes. Nevertheless, some experimental results have been obtained from genetic and biochemical studies with fungi and fibroblasts which confirm certain predictions of the protein error theory.

Aging↗

Growth and death of diploid and transformed human fibroblasts.

Three possible explanations are presented for the differences in growth potential between human diploid fibroblasts of finite life-span and permanent transformed lines: 1) Only diploid cells have a molecular clock mechanism which counts cell divisions prior to senescence. Two hypothetical examples of such mechanisms are described; however, the available evidence argues against a clock mechanism for aging in fibroblasts. 2) Cells become committed with a given probability to a slow buildup in protein errors, which leads after many divisions to a lethal error catastrophe. It can be shown that speeding up the rate at which the error catastrophe develops, as may occur in transformed cells, can convert a population of finite life-span to one with infinite growth. 3) The growth rate of diploid cells may not depend on the limiting concentration of any one protein. If so, cells with a low level of errors will not have a reduced generation time, and there will be no selection against them. On the other hand the uncontrolled growth of transformed cells may be reduced in rate by the presence of faulty proteins, so that there is continuous selection for those with the fewest errors. Finally, the analogous problem of the mortality of somatic cells and the immortality of the germ line is also briefly discussed.

Animals↗